[199] | 1 | c |
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| 2 | c $Header |
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| 3 | c |
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[52] | 4 | SUBROUTINE phystokenc ( |
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| 5 | I nlon,nlev,pdtphys,rlon,rlat, |
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[188] | 6 | I pt,pmfu, pmfd, pen_u, pde_u, pen_d, pde_d, |
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[52] | 7 | I pcoefh,yu1,yv1,ftsol,pctsrf, |
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| 8 | I frac_impa,frac_nucl, |
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[188] | 9 | I pphis,paire,dtime,itap) |
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[52] | 10 | USE ioipsl |
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| 11 | |
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| 12 | IMPLICIT none |
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| 13 | |
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| 14 | c====================================================================== |
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| 15 | c Auteur(s) FH |
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| 16 | c Objet: Moniteur general des tendances traceurs |
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| 17 | c |
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| 18 | |
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| 19 | c====================================================================== |
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| 20 | #include "dimensions.h" |
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| 21 | #include "dimphy.h" |
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| 22 | #include "tracstoke.h" |
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| 23 | #include "indicesol.h" |
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| 24 | #include "control.h" |
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| 25 | c====================================================================== |
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| 26 | |
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| 27 | c Arguments: |
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| 28 | c |
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| 29 | c EN ENTREE: |
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| 30 | c ========== |
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| 31 | c |
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| 32 | c divers: |
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| 33 | c ------- |
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| 34 | c |
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| 35 | integer nlon ! nombre de points horizontaux |
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| 36 | integer nlev ! nombre de couches verticales |
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| 37 | real pdtphys ! pas d'integration pour la physique (seconde) |
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| 38 | c |
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[188] | 39 | integer physid, itap,ndex(1) |
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[52] | 40 | |
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| 41 | c convection: |
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| 42 | c ----------- |
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| 43 | c |
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| 44 | REAL pmfu(klon,klev) ! flux de masse dans le panache montant |
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| 45 | REAL pmfd(klon,klev) ! flux de masse dans le panache descendant |
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| 46 | REAL pen_u(klon,klev) ! flux entraine dans le panache montant |
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| 47 | REAL pde_u(klon,klev) ! flux detraine dans le panache montant |
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| 48 | REAL pen_d(klon,klev) ! flux entraine dans le panache descendant |
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| 49 | REAL pde_d(klon,klev) ! flux detraine dans le panache descendant |
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[188] | 50 | REAL pt(klon,klev) |
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[52] | 51 | c |
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| 52 | REAL rlon(klon), rlat(klon), dtime |
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| 53 | REAL zx_tmp_3d(iim,jjm+1,klev),zx_tmp_2d(iim,jjm+1) |
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| 54 | |
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| 55 | c Couche limite: |
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| 56 | c -------------- |
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| 57 | c |
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| 58 | REAL pcoefh(klon,klev) ! coeff melange CL |
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| 59 | REAL yv1(klon) |
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| 60 | REAL yu1(klon),pphis(klon),paire(klon) |
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| 61 | c |
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| 62 | c Lessivage: |
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| 63 | c ---------- |
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| 64 | c |
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| 65 | REAL frac_impa(klon,klev) |
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| 66 | REAL frac_nucl(klon,klev) |
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| 67 | c |
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| 68 | c Arguments necessaires pour les sources et puits de traceur |
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| 69 | C |
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| 70 | real ftsol(klon,nbsrf) ! Temperature du sol (surf)(Kelvin) |
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| 71 | real pctsrf(klon,nbsrf) ! Pourcentage de sol f(nature du sol) |
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| 72 | c====================================================================== |
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| 73 | c |
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| 74 | INTEGER i, k |
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| 75 | c |
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| 76 | REAL mfu(klon,klev) ! flux de masse dans le panache montant |
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| 77 | REAL mfd(klon,klev) ! flux de masse dans le panache descendant |
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| 78 | REAL en_u(klon,klev) ! flux entraine dans le panache montant |
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| 79 | REAL de_u(klon,klev) ! flux detraine dans le panache montant |
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| 80 | REAL en_d(klon,klev) ! flux entraine dans le panache descendant |
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| 81 | REAL de_d(klon,klev) ! flux detraine dans le panache descendant |
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| 82 | REAL coefh(klon,klev) ! flux detraine dans le panache descendant |
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[188] | 83 | REAL t(klon,klev) |
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[52] | 84 | |
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| 85 | REAL pyu1(klon),pyv1(klon) |
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| 86 | REAL pftsol(klon,nbsrf),ppsrf(klon,nbsrf) |
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| 87 | real pftsol1(klon),pftsol2(klon),pftsol3(klon),pftsol4(klon) |
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| 88 | real ppsrf1(klon),ppsrf2(klon),ppsrf3(klon),ppsrf4(klon) |
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| 89 | |
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| 90 | REAL dtcum |
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| 91 | |
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| 92 | integer iadvtr,irec |
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| 93 | real zmin,zmax |
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[188] | 94 | |
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| 95 | save t,mfu,mfd,en_u,de_u,en_d,de_d,coefh,dtcum |
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[52] | 96 | save iadvtr,irec |
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| 97 | save pyu1,pyv1,pftsol,ppsrf |
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| 98 | |
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| 99 | data iadvtr,irec/0,1/ |
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| 100 | c |
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| 101 | c Couche limite: |
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| 102 | c====================================================================== |
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| 103 | |
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[188] | 104 | print*,'iadvtr= ',iadvtr |
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| 105 | print*,'istphy= ',istphy |
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| 106 | print*,'istdyn= ',istdyn |
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[52] | 107 | |
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| 108 | IF (iadvtr.eq.0) THEN |
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| 109 | |
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| 110 | CALL initphysto('phystoke', |
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| 111 | . rlon,rlat,dtime, dtime*istphy,dtime*istphy,nqmx,physid) |
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| 112 | |
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[188] | 113 | write(*,*) 'apres initphysto ds phystokenc' |
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[52] | 114 | |
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[188] | 115 | ndex(1) = 0 |
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| 116 | i=itap |
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| 117 | CALL gr_fi_ecrit(1,klon,iim,jjm+1,pphis,zx_tmp_2d) |
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| 118 | CALL histwrite(physid,"phis",i,zx_tmp_2d,iim*(jjm+1),ndex) |
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| 119 | c |
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| 120 | i=itap |
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| 121 | CALL gr_fi_ecrit(1,klon,iim,jjm+1,paire,zx_tmp_2d) |
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| 122 | CALL histwrite(physid,"aire",i,zx_tmp_2d,iim*(jjm+1),ndex) |
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[52] | 123 | |
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| 124 | ENDIF |
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| 125 | c |
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[188] | 126 | iadvtr=iadvtr+1 |
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[52] | 127 | c |
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[188] | 128 | c |
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| 129 | c reinitialisation des champs cumules |
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| 130 | if (mod(iadvtr,istphy).eq.1.or.istphy.eq.1) then |
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| 131 | print*,'reinitialisation des champs cumules |
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| 132 | s a iadvtr=',iadvtr |
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| 133 | do k=1,klev |
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| 134 | do i=1,klon |
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| 135 | mfu(i,k)=0. |
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| 136 | mfd(i,k)=0. |
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| 137 | en_u(i,k)=0. |
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| 138 | de_u(i,k)=0. |
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| 139 | en_d(i,k)=0. |
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| 140 | de_d(i,k)=0. |
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| 141 | coefh(i,k)=0. |
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| 142 | t(i,k)=0. |
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| 143 | enddo |
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| 144 | enddo |
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| 145 | do i=1,klon |
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| 146 | pyv1(i)=0. |
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| 147 | pyu1(i)=0. |
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| 148 | end do |
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| 149 | do k=1,nbsrf |
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| 150 | do i=1,klon |
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| 151 | pftsol(i,k)=0. |
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| 152 | ppsrf(i,k)=0. |
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| 153 | enddo |
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| 154 | enddo |
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[52] | 155 | |
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[188] | 156 | dtcum=0. |
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| 157 | endif |
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| 158 | |
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| 159 | do k=1,klev |
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| 160 | do i=1,klon |
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| 161 | mfu(i,k)=mfu(i,k)+pmfu(i,k)*pdtphys |
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| 162 | mfd(i,k)=mfd(i,k)+pmfd(i,k)*pdtphys |
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| 163 | en_u(i,k)=en_u(i,k)+pen_u(i,k)*pdtphys |
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| 164 | de_u(i,k)=de_u(i,k)+pde_u(i,k)*pdtphys |
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| 165 | en_d(i,k)=en_d(i,k)+pen_d(i,k)*pdtphys |
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| 166 | de_d(i,k)=de_d(i,k)+pde_d(i,k)*pdtphys |
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| 167 | coefh(i,k)=coefh(i,k)+pcoefh(i,k)*pdtphys |
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| 168 | t(i,k)=t(i,k)+pt(i,k)*pdtphys |
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| 169 | enddo |
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| 170 | enddo |
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| 171 | do i=1,klon |
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| 172 | pyv1(i)=pyv1(i)+yv1(i)*pdtphys |
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| 173 | pyu1(i)=pyu1(i)+yu1(i)*pdtphys |
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| 174 | end do |
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| 175 | do k=1,nbsrf |
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| 176 | do i=1,klon |
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| 177 | pftsol(i,k)=pftsol(i,k)+ftsol(i,k)*pdtphys |
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| 178 | ppsrf(i,k)=ppsrf(i,k)+pctsrf(i,k)*pdtphys |
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| 179 | enddo |
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| 180 | enddo |
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| 181 | |
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| 182 | dtcum=dtcum+pdtphys |
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[52] | 183 | c |
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[188] | 184 | IF(mod(iadvtr,istphy).eq.0) THEN |
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[52] | 185 | c |
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| 186 | c normalisation par le temps cumule |
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| 187 | do k=1,klev |
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| 188 | do i=1,klon |
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| 189 | mfu(i,k)=mfu(i,k)/dtcum |
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| 190 | mfd(i,k)=mfd(i,k)/dtcum |
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| 191 | en_u(i,k)=en_u(i,k)/dtcum |
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| 192 | de_u(i,k)=de_u(i,k)/dtcum |
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| 193 | en_d(i,k)=en_d(i,k)/dtcum |
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| 194 | de_d(i,k)=de_d(i,k)/dtcum |
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| 195 | coefh(i,k)=coefh(i,k)/dtcum |
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[188] | 196 | t(i,k)=t(i,k)/dtcum |
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[52] | 197 | enddo |
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| 198 | enddo |
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| 199 | do i=1,klon |
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| 200 | pyv1(i)=pyv1(i)/dtcum |
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| 201 | pyu1(i)=pyu1(i)/dtcum |
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| 202 | end do |
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[188] | 203 | c modif abderr 23 11 00 do k=1,nbsrf |
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[52] | 204 | do i=1,klon |
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[188] | 205 | do k=1,nbsrf |
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[52] | 206 | pftsol(i,k)=pftsol(i,k)/dtcum |
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[188] | 207 | ppsrf(i,k)=ppsrf(i,k)/dtcum |
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| 208 | enddo |
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[52] | 209 | pftsol1(i) = pftsol(i,1) |
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| 210 | pftsol2(i) = pftsol(i,2) |
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| 211 | pftsol3(i) = pftsol(i,3) |
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| 212 | pftsol4(i) = pftsol(i,4) |
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| 213 | |
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[188] | 214 | c ppsrf(i,k)=ppsrf(i,k)/dtcum |
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[52] | 215 | ppsrf1(i) = ppsrf(i,1) |
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| 216 | ppsrf2(i) = ppsrf(i,2) |
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| 217 | ppsrf3(i) = ppsrf(i,3) |
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| 218 | ppsrf4(i) = ppsrf(i,4) |
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| 219 | |
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| 220 | enddo |
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[188] | 221 | c enddo |
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[52] | 222 | c |
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| 223 | c ecriture des champs |
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| 224 | c |
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| 225 | irec=irec+1 |
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| 226 | |
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| 227 | ccccc |
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[188] | 228 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, t, zx_tmp_3d) |
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| 229 | CALL histwrite(physid,"t",itap,zx_tmp_3d, |
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| 230 | . iim*(jjm+1)*klev,ndex) |
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| 231 | |
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[52] | 232 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, mfu, zx_tmp_3d) |
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| 233 | CALL histwrite(physid,"mfu",itap,zx_tmp_3d, |
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[188] | 234 | . iim*(jjm+1)*klev,ndex) |
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| 235 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, mfd, zx_tmp_3d) |
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[52] | 236 | CALL histwrite(physid,"mfd",itap,zx_tmp_3d, |
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[188] | 237 | . iim*(jjm+1)*klev,ndex) |
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[52] | 238 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, en_u, zx_tmp_3d) |
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| 239 | CALL histwrite(physid,"en_u",itap,zx_tmp_3d, |
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[188] | 240 | . iim*(jjm+1)*klev,ndex) |
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[52] | 241 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, de_u, zx_tmp_3d) |
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| 242 | CALL histwrite(physid,"de_u",itap,zx_tmp_3d, |
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[188] | 243 | . iim*(jjm+1)*klev,ndex) |
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[52] | 244 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, en_d, zx_tmp_3d) |
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| 245 | CALL histwrite(physid,"en_d",itap,zx_tmp_3d, |
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[188] | 246 | . iim*(jjm+1)*klev,ndex) |
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| 247 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, de_d, zx_tmp_3d) |
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| 248 | CALL histwrite(physid,"de_d",itap,zx_tmp_3d, |
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| 249 | . iim*(jjm+1)*klev,ndex) |
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| 250 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1, coefh, zx_tmp_3d) |
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| 251 | CALL histwrite(physid,"coefh",itap,zx_tmp_3d, |
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| 252 | . iim*(jjm+1)*klev,ndex) |
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[52] | 253 | cccc |
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| 254 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1,frac_impa,zx_tmp_3d) |
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| 255 | CALL histwrite(physid,"frac_impa",itap,zx_tmp_3d, |
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[188] | 256 | . iim*(jjm+1)*klev,ndex) |
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[52] | 257 | |
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| 258 | CALL gr_fi_ecrit(klev,klon,iim,jjm+1,frac_nucl,zx_tmp_3d) |
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| 259 | CALL histwrite(physid,"frac_nucl",itap,zx_tmp_3d, |
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[188] | 260 | . iim*(jjm+1)*klev,ndex) |
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| 261 | |
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[52] | 262 | CALL gr_fi_ecrit(1, klon,iim,jjm+1, pyu1,zx_tmp_2d) |
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[188] | 263 | CALL histwrite(physid,"pyu1",itap,zx_tmp_2d,iim*(jjm+1),ndex) |
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| 264 | |
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| 265 | CALL gr_fi_ecrit(1, klon,iim,jjm+1, pyv1,zx_tmp_2d) |
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| 266 | CALL histwrite(physid,"pyv1",itap,zx_tmp_2d,iim*(jjm+1),ndex) |
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| 267 | |
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| 268 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, pftsol1, zx_tmp_2d) |
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[52] | 269 | CALL histwrite(physid,"ftsol1",itap,zx_tmp_2d, |
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[188] | 270 | . iim*(jjm+1),ndex) |
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[52] | 271 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, pftsol2, zx_tmp_2d) |
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| 272 | CALL histwrite(physid,"ftsol2",itap,zx_tmp_2d, |
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[188] | 273 | . iim*(jjm+1),ndex) |
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[52] | 274 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, pftsol3, zx_tmp_2d) |
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| 275 | CALL histwrite(physid,"ftsol3",itap,zx_tmp_2d, |
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[188] | 276 | . iim*(jjm+1),ndex) |
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| 277 | |
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| 278 | c |
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[52] | 279 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, pftsol4, zx_tmp_2d) |
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| 280 | CALL histwrite(physid,"ftsol4",itap,zx_tmp_2d, |
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[188] | 281 | . iim*(jjm+1),ndex) |
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[52] | 282 | |
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| 283 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, ppsrf1, zx_tmp_2d) |
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[188] | 284 | CALL histwrite(physid,"psrf1",itap,zx_tmp_2d, |
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| 285 | . iim*(jjm+1),ndex) |
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[52] | 286 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, ppsrf2, zx_tmp_2d) |
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| 287 | CALL histwrite(physid,"psrf2",itap,zx_tmp_2d, |
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[188] | 288 | . iim*(jjm+1),ndex) |
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[52] | 289 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, ppsrf3, zx_tmp_2d) |
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| 290 | CALL histwrite(physid,"psrf3",itap,zx_tmp_2d, |
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[188] | 291 | . iim*(jjm+1),ndex) |
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[52] | 292 | CALL gr_fi_ecrit(1,klon,iim,jjm+1, ppsrf4, zx_tmp_2d) |
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| 293 | CALL histwrite(physid,"psrf4",itap,zx_tmp_2d, |
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[188] | 294 | . iim*(jjm+1),ndex) |
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[52] | 295 | |
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| 296 | c |
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[188] | 297 | cAA Test sur la valeur des coefficients de lessivage |
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[52] | 298 | c |
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| 299 | zmin=1e33 |
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| 300 | zmax=-1e33 |
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| 301 | do k=1,klev |
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| 302 | do i=1,klon |
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| 303 | zmax=max(zmax,frac_nucl(i,k)) |
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| 304 | zmin=min(zmin,frac_nucl(i,k)) |
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| 305 | enddo |
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| 306 | enddo |
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| 307 | Print*,'------ coefs de lessivage (min et max) --------' |
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| 308 | Print*,'facteur de nucleation ',zmin,zmax |
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| 309 | zmin=1e33 |
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| 310 | zmax=-1e33 |
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| 311 | do k=1,klev |
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| 312 | do i=1,klon |
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| 313 | zmax=max(zmax,frac_impa(i,k)) |
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| 314 | zmin=min(zmin,frac_impa(i,k)) |
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| 315 | enddo |
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| 316 | enddo |
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| 317 | Print*,'facteur d impaction ',zmin,zmax |
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| 318 | |
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[188] | 319 | ENDIF |
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[52] | 320 | |
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| 321 | |
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| 322 | RETURN |
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| 323 | END |
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